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I have a text box and want to match the pattern as [a-z]{1}[A-Z]{1}[0-9]{1}

    var x=/^[a-z]{1}[A-Z]{1}[0-9]{1}$/;

    if(!x.test(document.getElementById('name').value))
    {
        alert("enter the correct format");
        return false;
    }

It works only for the value : aA1

what to do if these values can be entered randomly like aA1, Aa1, 1aA ?

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1  
It IS possible with regex. But you are better off writing a loop for this. –  nhahtdh Aug 24 '12 at 5:09
    
kindly please tell me how to do it in Regular expresion –  Ravinder Pal Aug 24 '12 at 5:12
    
does there have to be one of each? –  airza Aug 24 '12 at 5:13
    
@airza yes one of each at any position without occurence –  Ravinder Pal Aug 24 '12 at 5:42
    
Note (this applies to the question and all the answers so far), that {1} is completely redundant in a regex; it means "exactly one occurrence of the previous expression" which is exactly what the previous expression would match without any repetition modifier. –  ebohlman Aug 24 '12 at 6:36

3 Answers 3

To match a set of strings in any order you can use lookahead. Something like this:

/^(?=.*a)(?=.*b)(?=.*c)[abc]{3}$/.test('cab')

The syntax (?=whatever) is a positive lookahead, meaning it checks for a match without advancing the position of matcher. So each group looks for your characters anywhere in the string. The last part [abc]{3} ensures that no other characters are present in the string, and that there are exactly three characters. If multiples are okay, use [abc]+ instead.

For a more detailed reference see http://www.regular-expressions.info/lookaround.html.

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2  
Without having tested it, something like this? /^(?=.*[A-Z])(?=.*[a-z])(?=.*\d).{3}$/ –  Wiseguy Aug 24 '12 at 5:33
    
@wiseguy Excellent, I'll replace the + with {3}. Definitely want the character class there though, to weed out wrong characters. –  undefined Aug 24 '12 at 5:38
    
Oh yeah, this is way better. –  airza Aug 24 '12 at 5:42
1  
Actually, I see that the character class is unnecessary, since the if each of the required characters is there, there can be no other characters there. I'll leave it there, but it is optional. It is still necessary if you are using the + –  undefined Aug 24 '12 at 5:45
    
@Wiseguy thanksss it realy workss.... bt can u explain me its working –  Ravinder Pal Aug 24 '12 at 5:50

You can use the monster expression

/$([a-z][A-Z][0-9])|([A-Z][a-z][0-9])|([0-9][a-z][A-Z])|([a-z][0-9][A-Z])|([A-Z][0-9][a-z])|([0-9][A-Z][a-z])^/

but I'm not sure this is an efficient or scalable solution.

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3  
I felt kind of dirty writing it. –  airza Aug 24 '12 at 5:21
    
Btw, I think it should be /^([a-z][A-Z][0-9]|[A-Z][a-z][0-9]|[0-9][a-z][A-Z]|[a-z][0-9][A-Z]|[A-Z][0-9][a‌​-z]|[0-9][A-Z][a-z])$/. The / are RegExp literal delimiters in JS, and ^ matches the start of the string, $ matches the end of the string. –  nhahtdh Aug 24 '12 at 5:31
    
+1. It would be even longer if letters need to match as in OP's sample (Aa1 may mean "upper case first letter, lower case the same second letter"). –  Alexei Levenkov Aug 24 '12 at 5:32
    
Thanks for the correction. Don't know why I put a ? mark at the beginning. –  airza Aug 24 '12 at 5:41

Try this

/^([a-z]{1}[A-Z]{1}[0-9]{1}|[A-Z]{1}[a-z]{1}[0-9]{1}|[0-9]{1}[a-z]{1}[A-Z]{1})$/

The First expression [a-z]{1}[A-Z]{1}[0-9]{1} deals with the pattern : aA1

The Second epression [A-Z]{1}[a-z]{1}[0-9]{1} deals with the pattern : Aa1

And the Third expression [0-9]{1}[a-z]{1}[A-Z]{1} deals with the pattern : 1aA

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This fails on 'Z0a' –  airza Aug 24 '12 at 5:46
    
@airza We have this sample as asked in question aA1, Aa1, 1aA . . And the expression matches all these . . –  coosal Aug 24 '12 at 5:48
    
@Wiseguy is it fine now ? ? :) –  coosal Aug 24 '12 at 5:53
    
Excellent! Thanks for adding a thorough explanation. –  Wiseguy Aug 24 '12 at 5:59
    
@Wiseguy Thanks for the comment bro . . :) –  coosal Aug 26 '12 at 4:44

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